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Real time condition monitoring of hydraulic brake system using naive bayes and bayes net algorithms

机译:Naive Bayes and Bayes Net算法的液压制动系统实时调速

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The vehicles usage is increasing day by day due to the recent,technological development in the automotive field.In a competitive global market in order to survive,the reliability needs to be ensured,through a proper monitoring system.Brake system is one such control component,in which much focus is very much essential.An efficient brake system should provide reliable and effective performance in order to ensure the safety.If it is not properly monitored,it may lead to a serious catastrophic effect such as accidents,brake down,etc.Hence,the brake system needs to be monitored continuously.In this study,an experimental investigation was carried out for monitoring the brake system using vibration signals.An experimental setup which resembles the brake system was fabricated.The vibration signals were acquired under various brake condition such as good and faulty.From the acquired vibration signals,the features were extracted using statistical and histogram feature extraction techniques and feature selection was carried out.The selected features were then classifieds using a Naive Bayes and Bayes Net a classifier.The classification accuracy of all the algorithms were compared for finding the best feature classifier model for monitoring the brake condition.
机译:由于近期汽车领域的技术开发,车辆使用的日趋逐渐增加。在竞争力的全球市场才能生存,通过适当的监控系统需要确保可靠性.Brake系统是一种这样的控制部件,其中很多重点是非常重要的。高效的制动系统应提供可靠且有效的性能,以确保安全性未被正确监控,可能导致事故,制动器,制动器等严重灾难性效果。因此,需要连续监测制动系统。在本研究中,进行了一种实验研究,用于使用振动信号监测制动系统。制造类似于制动系统的实验设置。在各种制动器下获取振动信号良好且故障等条件。从获取的振动信号中,使用统计和直方图特征提取技术和特征选择是进行的。然后使用天真的贝叶斯和贝叶斯净净分类所选功能。比较了所有算法的分类准确性,以找到用于监控制动条件的最佳特征分类器模型。

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